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CVD 生长石墨烯中的超快电子-光声子散射和准粒子寿命。

Ultrafast electron-optical phonon scattering and quasiparticle lifetime in CVD-grown graphene.

机构信息

Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore 637371.

出版信息

ACS Nano. 2011 Apr 26;5(4):3278-83. doi: 10.1021/nn200419z. Epub 2011 Mar 16.

Abstract

Ultrafast quasiparticle dynamics in graphene grown by chemical vapor deposition (CVD) has been studied by UV pump/white-light probe spectroscopy. Transient differential transmission spectra of monolayer graphene are observed in the visible probe range (400-650 nm). Kinetics of the quasiparticle (i.e., low-energy single-particle excitation with renormalized energy due to electron-electron Coulomb, electron-optical phonon (e-op), and optical phonon-acoustic phonon (op-ap) interactions) was monitored with 50 fs resolution. Extending the probe range to near-infrared, we find the evolution of quasiparticle relaxation channels from monoexponential e-op scattering to double exponential decay due to e-op and op-ap scattering. Moreover, quasiparticle lifetimes of mono- and randomly stacked graphene films are obtained for the probe photon energies continuously from 1.9 to 2.3 eV. Dependence of quasiparticle decay rate on the probe energy is linear for 10-layer stacked graphene films. This is due to the dominant e-op intervalley scattering and the linear density of states in the probed electronic band. A dimensionless coupling constant W is derived, which characterizes the scattering strength of quasiparticles by lattice points in graphene.

摘要

通过紫外泵浦/白光探测光谱研究了化学气相沉积(CVD)生长的石墨烯中的超快准粒子动力学。在可见探测范围内(400-650nm)观察到单层石墨烯的瞬态差分透射光谱。通过 50fs 分辨率监测准粒子(即由于电子-电子库仑、电子-光学声子(e-op)和光学声子-声学声子(op-ap)相互作用而具有重整化能量的低能单粒子激发)的动力学。将探测范围扩展到近红外,我们发现准粒子弛豫通道的演化从单指数 e-op 散射到由于 e-op 和 op-ap 散射的双指数衰减。此外,还获得了连续从 1.9eV 到 2.3eV 的探测光子能量下的单原子层和随机堆积石墨烯薄膜的准粒子寿命。对于 10 层堆积的石墨烯薄膜,准粒子衰减率与探测能量的依赖性呈线性关系。这是由于主导的 e-op 谷间散射和探测电子能带中的线性态密度。推导出一个无量纲的耦合常数 W,它描述了在石墨烯中晶格点对准粒子的散射强度。

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